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Observations of Energetic-particle Population Enhancements along Intermittent Structures near the Sun from the Parker Solar Probe

  • Riddhi Bandyopadhyay
  • , W. H. Matthaeus
  • , T. N. Parashar
  • , R. Chhiber
  • , D. Ruffolo
  • , M. L. Goldstein
  • , B. A. Maruca
  • , A. Chasapis
  • , R. Qudsi
  • , D. J. McComas
  • , E. R. Christian
  • , J. R. Szalay
  • , C. J. Joyce
  • , J. Giacalone
  • , N. A. Schwadron
  • , D. G. Mitchell
  • , M. E. Hill
  • , M. E. Wiedenbeck
  • , R. L. McNutt
  • , M. I. Desai
  • Stuart D. Bale, J. W. Bonnell, Thierry Dudok De Wit, Keith Goetz, Peter R. Harvey, Robert J. MacDowall, David M. Malaspina, Marc Pulupa, M. Velli, J. C. Kasper, K. E. Korreck, M. Stevens, A. W. Case, N. Raouafi
  • University of Delaware
  • University of Delaware
  • NASA/Goddard Space Flight Center
  • Mahidol University
  • University of Maryland, Baltimore County (UMBC)
  • University of Colorado Boulder
  • Princeton University
  • University of Arizona
  • University of New Hampshire Durham
  • Johns Hopkins University Applied Physics Laboratory
  • LIGO-California Institute of Technology
  • University of Texas at San Antonio
  • University of California, Berkeley
  • Space Sciences Laboratory
  • Imperial College London
  • Queen Mary University of London
  • Université d’Orléans
  • University of Minnesota
  • University of California
  • University of Michigan, Ann Arbor
  • Smithsonian Astrophysical Observatory

Research output: Contribution to journalArticlepeer-review

28 Citations (Scopus)

Abstract

Observations at 1 au have confirmed that enhancements in measured energetic-particle (EP) fluxes are statistically associated with "rough" magnetic fields, i.e., fields with atypically large spatial derivatives or increments, as measured by the Partial Variance of Increments (PVI) method. One way to interpret this observation is as an association of the EPs with trapping or channeling within magnetic flux tubes, possibly near their boundaries. However, it remains unclear whether this association is a transport or local effect; i.e., the particles might have been energized at a distant location, perhaps by shocks or reconnection, or they might experience local energization or re-acceleration. The Parker Solar Probe (PSP), even in its first two orbits, offers a unique opportunity to study this statistical correlation closer to the corona. As a first step, we analyze the separate correlation properties of the EPs measured by the Integrated Science Investigation of the Sun (ISo˙IS) instruments during the first solar encounter. The distribution of time intervals between a specific type of event, i.e., the waiting time, can indicate the nature of the underlying process. We find that the ISo˙IS observations show a power-law distribution of waiting times, indicating a correlated (non-Poisson) distribution. Analysis of low-energy (∼15 - 200 keV/nuc) ISo˙IS data suggests that the results are consistent with the 1 au studies, although we find hints of some unexpected behavior. A more complete understanding of these statistical distributions will provide valuable insights into the origin and propagation of solar EPs, a picture that should become clear with future PSP orbits.

Original languageEnglish
Article number61
JournalAstrophysical Journal, Supplement Series
Volume246
Issue number2
DOIs
Publication statusPublished - Feb 2020
Externally publishedYes

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